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D LeBel

Publications and source records attributed to D LeBel.

25 records · Page 2Linked to original sources

Identification of the proteins exposed on the cytoplasmic surface of the pancreatic zymogen granule.

Lactoperoxidase-catalyzed 125I-iodination was used to label pancreatic zymogen granules. Membrane proteins facing the cytoplasmic surface were specifically labeled. Two low molecular weight proteins of 17 000 and 15 000 were intensely labeled at 0 degree C. Another small 13 kDa protein was strongly iodinated at 25 degrees C along with some others, including the 29 kDa subunit of the ATP diphosphohydrolase. The major glycoprotein of the granule membrane was not iodinated but the presence of an iodinated 80 kDa protein suggests that proteolytic fragments of the 92 kDa glycoprotein were accessible to iodination on the intact granule. These proteins localized on the cytoplasmic surface of the granule are believed to play a major role in the exocytotic phenomenon of the exocrine pancreas.

Animals↗

Cytological effects of ionophore-induced stimulation on the exocrine pancreas of the rat.

Rat-pancreas lobules were incubated with the ionophore A-23187 in the presence of Ca2+. After 90 min, some of the acini were partially or almost completely depleted of their zymogen granules while others had the appearance of resting acini. With few exceptions, the cells of a given acinus were degranulated to a comparable level. Slight dispersion of the zymogen granules was noticed in cells incubated in a Ca2+-free medium containing EGTA with or without A-23187. In the presence of Ca2+ the secretory response obtained with the ionophore was comparable to that observed with 10(-5)M urecholine. The results obtained provide cytological evidence that the secretory response is only partially determined at the membrane-receptor level and that other mechanisms intervene between cytosol Ca2+ increase and exocytosis.

Amylases↗

Characterization and purification of a calcium-sensitive ATP diphosphohydrolase from pig pancreas.

An ATP diphosphohydrolase (EC 3.6.1.5) from the pancreas of the pig has been characterized and purified. The enzyme which has an optimum pH between 8 and 9 is specific for diphospho- and triphosphonucleosides. The Km values for ADP and ATP are 7.4 and 7.3 x 10(-4) M, respectively, and the purified enzyme has specific activities of 13 and 15.2 mumol of Pi/min/m of protein, respectively. It requires calcium or magnesium ions and it is insensitive to ATPase inhibitors, namely oligomycin, ouabain, and ruthenium red, and to levamisole, an inhibitor of alkaline phosphatase. Denaturation experiments, by heat and trypsin treatments, indicated that only one enzyme is involved. This is confirmed by the solubilization and purification process and by polyacrylamide gel electrophoresis. A 270-fold purification was obtained by centrifugation and successive column chromatography on Sepharose 4B and Affi-Gel blue. It is a glycoprotein with a molecular weight of 65,000 as estimated by polyacrylamide gel electrophoresis.

Animals↗

Ion pathways in proteins of the sarcoplasmic reticulum.

In summary, we have begun to characterize three different ion pathways in the sarcoplasmic reticulum. Ca2+-ionophoric activity has been traced to a 13,000-dalton CNBr fragment localized at the amino terminus of the ATPase molecule... The pathway involved in Ca2+ release can be distinguished from the pathway involved in Ca2+ uptake by its insensitivity to quercetin. An anion pathway is sensitive to DIDS and appears to be localized in the ATPase molecule

Amino Acid Sequence↗

Specific interactions of pancreatic amylase at acidic pH. Amylase and the major protein of the zymogen granule membrane (GP-2) bind to immobilized or polymerized amylase.

Regulated secretory proteins are thought to be sorted in the trans-Golgi network towards the secretory granule via acidic aggregation. In the exocrine pancreas, amylase is one of the major zymogens. It is a basic protein of pI 8.6 and does not precipitate in acidic conditions. To identify the mechanism by which amylase aggregates in the acidic cisternae of the pancreatic trans-Golgi network, we have developed an in vitro model in which amylase was fixed to plastic microtiter plates. The fixed amylase was probed with two ligands: amylase itself and GP-2, the major protein of the zymogen granule membrane. Biotinylated amylase bound to fixed amylase in a strict pH-dependent manner with optimal binding between pH 5.0 and 5.7. The affinity of binding was in the nanogram range (Kd approximately 20.0 ng/mL) at pH 5.5. Acid binding of amylase was not reversible by incubation at neutral pH, nor could it be displaced by native amylase. GP-2 binding to fixed amylase was also pH dependent with optimal binding between pH 5.0 and 5.7. As for amylase, it was not reversible by incubation at neutral pH. GP-2 binding sites on fixed amylase appeared to be different from those of biotinylated amylase. While native and biotinylated amylase did not bind to GP-2, polymerized amylase precipitated GP-2 at acidic pH. Taken together these data suggest that slight modifications are sufficient to reveal on the amylase molecule binding sites for GP-2 and for amylase itself. These new binding capacities acquired at acidic pH could be involved in the cascade of reactions that lead to the in vivo formation of the immature secretory granule.

Amylases↗

Ontogeny of IGFs and IGFBPs mRNA levels and tissue concentrations in liver, kidney and skeletal muscle of pig.

As far as we know, there is no available information about ontogenic changes of tissue concentrations of IGF-I and II and IGFBPs in large mammals. Serum, liver and kidney levels of IGFs and IGFBPs were examined in fetuses at 90 and 110 days of gestation and in pigs at 1d, 3 wk, 3 mo and 6 mo of age. Ontogeny of mRNA levels of IGFs, IGF type I and type II receptors (IGFI-R and IGFII-R), IGFBP-1 and -3 (IGFBPs) and growth hormone receptor (GHR) were also examined by Northern blot analysis in liver, kidney and skeletal muscle of pig. Serum IGF-I, IGF-II and IGFBP-3 concentrations were low during the fetal life and increased after birth. The highest level of IGF-II mRNA was found in fetuses for all studied tissues. In the liver, IGF-I mRNA level and its protein content peaked at 3 wk of age. The highest IGF-II concentration was found at 1d and 3 wk of age. The IGFII-R mRNA remained at a constant level during the whole development period. The most abundant IGFBP-1 mRNA and its protein content were found at birth. The level of IGFBP-2 was high during fetal and early postnatal life. The IGFBP-3 content was relatively low in fetuses and reached the highest level after 3 wk of age. In the kidney, IGFs, IGFBP-3, IGFI-R and IGFII-R as well as GHR mRNA levels were relatively high during the fetal and early postnatal life. The IGFs concentrations were the highest in newborns. In the skeletal muscle, IGFs, IGFBP-3 and IGFI-R mRNA levels decreased with advancing age. During the postnatal life, the high IGFs concentrations in the liver and the kidney correspond to fast growth periods of these organs.

Animals↗